The present invention relates to a transformer, and more particularly to a transformer having plural single-trough second winding sections.
A transformer has become an essential electronic component for voltage regulation into required voltages for various kinds of electric appliances.
Since the leakage inductance of the transformer has an influence on the electric conversion efficiency of a power converter, it is very important to control leakage inductance. In the power supply system of the new-generation electric products such as LCD televisions, leakage inductance transformers (e.g. LLC transformers) become more and more prevailing. Generally, the current generated from the power supply system will pass through a LC resonant circuit composed of an inductor L and a capacitor C, wherein the inductor L is inherent in the primary winding coil of the transformer. At the same time, the current with a near half-sine waveform will pass through a power MOSFET (Metal Oxide Semiconductor Field Effect Transistor) switch. When the current is zero, the power MOSFET switch is conducted. After a half-sine wave is past and the current returns zero, the switch is shut off. As known, this soft switch of the resonant circuit may reduce damage possibility of the switch, minimize noise and enhance performance. As the LCD panels become more and more large-sized and slim, many components (e.g. magnetic elements, conductive winding modules, or the like) are developed toward minimization and high electric conversion efficiency.
As known, after the transformer 1 is assembled, an air gap (not shown) is defined between the corresponding leg portions 132. The air gap is formed between the primary winding coil 111 and a secondary winding coil 112. If the secondary winding coil 112 is in a short-circuit condition, the magnetic path possibly causes individual loops and thus the leakage inductance is increased. Under this circumstance, the leakage inductance of the transformer 1 fails to be stably controlled. In addition, after the outlet parts 113 and 114 of the primary winding coil 111 and the secondary winding coil 112 are wound around and soldered on the pins 115, each of the outlet parts 113 and 114 is usually sheathed by a tube 14. If the tube 14 is omitted, the primary winding coil 111 and the secondary winding coil 112 wound around the bobbin 11 are possibly stained with solder paste because the wire-managing groove 117 is too short or the distance between the pin 115 and the winding section of the bobbin 11 is too short. Although the use of the tube 14 could protect the primary winding coil 111 and the secondary winding coil 112 wound around the bobbin 11, there are still some drawbacks. For example, the tube 14 may be thermally damaged. The procedure of sheathing the tube 14 is time-consuming and labor-intensive. In addition, the use of the tube 14 increases the cost of the transformer.
Therefore, there is a need of providing an improved transformer so as to obviate the drawbacks encountered from the prior art.
It is an object of the present invention to provide a transformer having plural single-trough second winding sections. Plural secondary winding coils are wound around respective single-trough second winding sections, so that the winding means and the magnetic path are changed.
Another object of the present invention provides a transformer having an air gap disposed over the primary winding coil, thereby stably controlling the leakage inductance.
A further object of the present invention provides a transformer having increased winding space, enhanced electric conversion efficiency, and reduced heat generation.
In accordance with an aspect of the present invention, there is provided a transformer. The transformer includes a covering member, a bobbin, a primary winding coil, plural secondary winding coils, and a magnetic core assembly. The covering member includes plural pins. The bobbin is combined with the covering member, and includes a bobbin body and a channel. A first winding section and plural single-trough second winding sections are defined on the bobbin body. The single-trough second winding sections are arranged at bilateral sides of the first winding section. The channel runs through the bobbin body. The primary winding coil is wound around the first winding section of the bobbin, and connected with the pins. The secondary winding coils are wound around respective single-trough second winding sections of the bobbin. The magnetic core assembly is partially embedded into the channel of the bobbin.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
In some embodiments, the bobbin 22 further comprises a central separation plate 229. The central separation plate 229 is arranged in the first winding section 222. By the central separation plate 229, the first winding section 222 is divided into a first portion 222a and a second portion 222b, so that the first winding section 222 is a multi-trough winding section. In addition, the central separation plate 229 further includes a notch 2291. During the procedure of winding the primary winding coil 24 around the first winding section 222, the primary winding coil 24 could be wound from the first portion 222a to the second portion 222b (or from the second portion 222b to the first portion 222a) through the notch 2291. In some embodiments, the central separation plate 229 is omitted, so that the first winding section 222 is also a single-trough winding section.
In the embodiment of
Please refer to
It is noted that the winding direction of the primary winding coil 24 could be varied as required. In some embodiments, the outlet part 24b is firstly wound around the second portion 222a of the first winding section 222 and then wound around the first portion 222a through the notch 2291 of the central separation plate 229. The secondary winding coils 25 are wound around respective single-trough second winding sections 223 of the bobbin body 221. That is, each secondary winding coil 25 is wound around a corresponding single-trough second winding section 223. The two outlet parts of each secondary winding coil 25 are soldered on the pins 228 of the two connecting bases 227 (see
Hereinafter, a process of assembling the transformer 2 will be illustrated with reference to
From the above description, since the secondary winding coils are wound around respective single-trough second winding sections of the bobbin body, the transformer of the present invention has enhanced electric conversion efficiency. Since the outlet parts of the primary winding coil are fixed on the pins of the covering member, the winding space of the first winding section is increased and the heat generated during operation of the transformer is reduced. Moreover, since the single-trough second winding sections are arranged at bilateral sides of the first winding section, the air gap defined by the magnetic core assembly is disposed over the primary winding coil. Under this circumstance, the leakage inductance of the transformer could be stably controlled.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
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98139223 A | Nov 2009 | TW | national |
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Number | Date | Country | |
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20110115595 A1 | May 2011 | US |